Acta Optica Sinica, Volume. 43, Issue 1, 0119001(2023)

Nonlinear Behavior Research Based on Hybrid Spinning Optomechanical System

Yonglei Chen, Huajun Chen*, Yunhe Liu, and Baohao Xie
Author Affiliations
  • School of Mechanics and Photoelectric Physics, Anhui University of Science and Technology, Huainan 232001, Anhui, China
  • show less
    References(59)

    [1] Aspelmeyer M, Kippenberg T J, Marquardt F. Cavity optomechanics[J]. Reviews of Modern Physics, 86, 1391(2014).

    [2] Metcalfe M. Applications of cavity optomechanics[J]. Applied Physics Reviews, 1, 031105(2014).

    [3] Schliesser A, Arcizet O, Rivière R et al. Resolved-sideband cooling and position measurement of a micromechanical oscillator close to the Heisenberg uncertainty limit[J]. Nature Physics, 5, 509-514(2009).

    [4] Basiri-Esfahani S, Akram U, Milburn G J. Phonon number measurements using single photon opto-mechanics[J]. New Journal of Physics, 14, 085017(2012).

    [5] Gavartin E, Verlot P, Kippenberg T J. A hybrid on-chip optomechanical transducer for ultrasensitive force measurements[J]. Nature Nanotechnology, 7, 509-514(2012).

    [6] Krause A G, Winger M, Blasius T D et al. A high-resolution microchip optomechanical accelerometer[J]. Nature Photonics, 6, 768-772(2012).

    [7] Schreppler S, Spethmann N, Brahms N et al. Optically measuring force near the standard quantum limit[J]. Science, 344, 1486-1489(2014).

    [8] Xiong H, Si L G, Wu Y. Precision measurement of electrical charges in an optomechanical system beyond linearized dynamics[J]. Applied Physics Letters, 110, 171102(2017).

    [9] Matsumoto N, Cataño-Lopez S B, Sugawara M et al. Demonstration of displacement sensing of a mg-scale pendulum for mm- and mg-scale gravity measurements[J]. Physical Review Letters, 122, 071101(2019).

    [10] Yu F, Xiao T, He G Q et al. Probe absorption properties of a superconducting qubit coupled to microwave cavity and mechanical resonator[J]. Laser & Optoelectronics Progress, 59, 0327001(2022).

    [11] Schliesser A, Rivière R, Anetsberger G et al. Resolved-sideband cooling of a micromechanical oscillator[J]. Nature Physics, 4, 415-419(2008).

    [12] Teufel J D, Donner T, Li D L et al. Sideband cooling of micromechanical motion to the quantum ground state[J]. Nature, 475, 359-363(2011).

    [13] Chan J, Alegre T P M, Safavi-Naeini A H et al. Laser cooling of a nanomechanical oscillator into its quantum ground state[J]. Nature, 478, 89-92(2011).

    [14] Chen X, Liu Y C, Peng P et al. Cooling of macroscopic mechanical resonators in hybrid atom-optomechanical systems[J]. Physical Review A, 92, 033841(2015).

    [15] Lai D G, Zou F, Hou B P et al. Simultaneous cooling of coupled mechanical resonators in cavity optomechanics[J]. Physical Review A, 98, 023860(2018).

    [16] Tian L. Robust photon entanglement via quantum interference in optomechanical interfaces[J]. Physical Review Letters, 110, 233602(2013).

    [17] Wang Y D, Clerk A A. Reservoir-engineered entanglement in optomechanical systems[J]. Physical Review Letters, 110, 253601(2013).

    [18] Liao J Q, Law C K. Correlated two-photon scattering in cavity optomechanics[J]. Physical Review A, 87, 043809(2013).

    [19] Mirza I M. Strong coupling optical spectra in dipole-dipole interacting optomechanical Tavis-Cummings models[J]. Optics Letters, 41, 2422-2425(2016).

    [20] Chen H J, Wu H W, Yang J Y et al. Controllable optical bistability and four-wave mixing in a photonic-molecule optomechanics[J]. Nanoscale Research Letters, 14, 73(2019).

    [21] Chen B, Wang X F, Yan J K et al. Controllable optical bistability in a three-mode optomechanical system with atom-cavity-mirror couplings[J]. Superlattices and Microstructures, 113, 301-309(2018).

    [22] Wang Z, Jiang C, He Y et al. Tunable optical bistability in multi-mode optomechanical systems[J]. Journal of the Optical Society of America B, 37, 579-585(2020).

    [23] Zhang J S, Zhang H J, Sun H. Controlling optical bistability through quantum coherence in tin-vacancy color centers in diamond[J]. Acta Optica Sinica, 40, 1219001(2020).

    [24] Xiong H, Wu Y. Fundamentals and applications of optomechanically induced transparency[J]. Applied Physics Reviews, 5, 031305(2018).

    [25] Yang Q, Hou B P, Lai D G. Local modulation of double optomechanically induced transparency and amplification[J]. Optics Express, 25, 9697-9711(2017).

    [26] Mukherjee K, Jana P C. Optically induced transparency in coupled micro-cavities: tunable Fano resonance[J]. The European Physical Journal D, 73, 264(2019).

    [27] Qing H, Badshah F, Din R U et al. Optomechanically induced transparency and the long-lived slow light in a nonlinear system[J]. Journal of the Optical Society of America B, 35, 1649-1657(2018).

    [28] Dong Y B, Pang J L, Yang L et al. Nearly-resonant gain grating in atomic media[J]. Chinese Journal of Lasers, 48, 0312002(2021).

    [29] Chen B, Shang L, Wang X F et al. Atom-assisted second-order sideband generation in an optomechanical system with atom-cavity-resonator coupling[J]. Physical Review A, 99, 063810(2019).

    [30] Wang L D, Yan J K, Zhu X F et al. Tunable second-order sideband effects in a three-mode optomechanical system containing a single quantum well[J]. Physica E, 89, 134-138(2017).

    [31] Liu Z X, Xiong H, Wu Y. Generation and amplification of a high-order sideband induced by two-level atoms in a hybrid optomechanical system[J]. Physical Review A, 97, 013801(2018).

    [32] Yang W X, Chen A X, Xie X T et al. Enhanced generation of higher-order sidebands in a single-quantum-dot-cavity system coupled to a PT-symmetric double cavity[J]. Physical Review A, 96, 013802(2017).

    [33] Gu K H, Yan X B, Zhang Y et al. Tunable slow and fast light in an atom-assisted optomechanical system[J]. Optics Communications, 338, 569-573(2015).

    [34] Jiang C, Jiang L, Yu H L et al. Fano resonance and slow light in hybrid optomechanics mediated by a two-level system[J]. Physical Review A, 96, 053821(2017).

    [35] Jiang C, Cui Y S, Zhai Z Y et al. Phase-controlled amplification and slow light in a hybrid optomechanical system[J]. Optics Express, 27, 30473-30485(2019).

    [36] Jiang C, Cui Y S, Liu H X. Controllable four-wave mixing based on mechanical vibration in two-mode optomechanical systems[J]. Europhysics Letters, 104, 34004(2013).

    [37] Liu L W, Gengzang D J, Shi Y Q et al. Controllable four-wave mixing based on hybrid BEC-optomechanical systems[J]. Acta Physica Polonica A, 136, 444-453(2019).

    [38] Jiang L, Yuan X R, Cui Y S et al. Optical bistability and four-wave mixing in a hybrid optomechanical system[J]. Physics Letters A, 381, 3289-3294(2017).

    [39] Wang X F, Chen B. Four-wave mixing response in a hybrid atom-optomechanical system[J]. Journal of the Optical Society of America B, 36, 162-167(2019).

    [40] Jing J T, Zhang K, Liu S S. Quantum information protocols based on four-wave mixing process in atomic ensemble[J]. Acta Optica Sinica, 42, 0327003(2022).

    [41] Farman F, Bahrampour A R. Effects of optical parametric amplifier pump phase noise on the cooling of optomechanical resonators[J]. Journal of the Optical Society of America B, 30, 1898-1904(2013).

    [42] Kumar T, Bhattacherjee A B, ManMohan. Dynamics of a movable micromirror in a nonlinear optical cavity[J]. Physical Review A, 81, 013835(2010).

    [43] Dorsel A, McCullen J D, Meystre P et al. Optical bistability and mirror confinement induced by radiation pressure[J]. Physical Review Letters, 51, 1550-1553(1983).

    [44] Sete E A, Eleuch H. Controllable nonlinear effects in an optomechanical resonator containing a quantum well[J]. Physical Review A, 85, 043824(2012).

    [45] Chen B, Jiang C, Zhu K D. Slow light in a cavity optomechanical system with a Bose-Einstein condensate[J]. Physical Review A, 83, 055803(2011).

    [46] Chen B, Jiang C, Li J J et al. All-optical transistor based on a cavity optomechanical system with a Bose-Einstein condensate[J]. Physical Review A, 84, 055802(2011).

    [47] Yan D, Wang Z H, Ren C N et al. Duality and bistability in an optomechanical cavity coupled to a Rydberg superatom[J]. Physical Review A, 91, 023813(2015).

    [48] Xiong W, Jin D Y, Qiu Y Y et al. Cross-Kerr effect on an optomechanical system[J]. Physical Review A, 93, 023844(2016).

    [49] Maayani S, Dahan R, Kligerman Y et al. Flying couplers above spinning resonators generate irreversible refraction[J]. Nature, 558, 569-572(2018).

    [50] Li B J, Huang R, Xu X W et al. Nonreciprocal unconventional photon blockade in a spinning optomechanical system[J]. Photonics Research, 7, 630-641(2019).

    [51] Mirza I M, Ge W C, Jing H. Optical nonreciprocity and slow light in coupled spinning optomechanical resonators[J]. Optics Express, 27, 25515-25530(2019).

    [52] Li W A, Huang G Y, Chen J P et al. Nonreciprocal enhancement of optomechanical second-order sidebands in a spinning resonator[J]. Physical Review A, 102, 033526(2020).

    [53] Chen H J. Phonon pump enhanced fast and slow light in a spinning optomechanical system[J]. Results in Physics, 31, 105002(2021).

    [54] Li B J, Özdemir Ş K, Xu X W et al. Nonreciprocal optical solitons in a spinning Kerr resonator[J]. Physical Review A, 103, 053522(2021).

    [55] Post E J. Sagnac effect[J]. Reviews of Modern Physics, 39, 475-493(1967).

    [56] Malykin G B. The Sagnac effect: correct and incorrect explanations[J]. Physics-Uspekhi, 43, 1229-1252(2000).

    [57] Lü H, Jiang Y J, Wang Y Z et al. Optomechanically induced transparency in a spinning resonator[J]. Photonics Research, 5, 367-371(2017).

    [58] Davuluri S, Zhu S Y. Controlling optomechanically induced transparency through rotation[J]. Europhysics Letters, 112, 64002(2015).

    [59] Guo H R, Karpov M, Lucas E et al. Universal dynamics and deterministic switching of dissipative Kerr solitons in optical microresonators[J]. Nature Physics, 13, 94-102(2017).

    Tools

    Get Citation

    Copy Citation Text

    Yonglei Chen, Huajun Chen, Yunhe Liu, Baohao Xie. Nonlinear Behavior Research Based on Hybrid Spinning Optomechanical System[J]. Acta Optica Sinica, 2023, 43(1): 0119001

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Nonlinear Optics

    Received: May. 5, 2022

    Accepted: Jun. 20, 2022

    Published Online: Jan. 6, 2023

    The Author Email: Chen Huajun (chenphysics@126.com)

    DOI:10.3788/AOS221068

    Topics